Scientific Library of Tomsk State University

   E-catalog        

Normal view MARC view

Self-channeling of spatially modulated femtosecond laser beams in the post-filamentation region Y. E. Geints, O. V. Minina, A. A. Zemlyanov

By: Geints, Yuri EContributor(s): Minina, Olga V | Zemlyanov, Alexander AMaterial type: ArticleArticleContent type: Текст Media type: электронный Subject(s): самоканалирование | фемтосекундные лазерные импульсы | численное моделирование | филаментацияGenre/Form: статьи в журналах Online resources: Click here to access online In: Journal of the Optical Society of America. B, Optical physics Vol. 39, № 6. P. 1549-1556Abstract: The propagation of high-intensity femtosecond laser pulses in air under conditions of superposed spatial phase modulation is considered theoretically. The numerical simulations are carried out on the basis of the reduced form of a nonlinear Schrödinger equation for a time-averaged electric field envelope. Initial spatial modulations are applied to pulse wavefront profiling by a staggered (TEM22) phase plate, which is simulated numerically. The dynamics of laser pulse self-focusing, filamentation, and post-filamentation self-channeling after the phase plates with variable phase jumps is studied. We show that, with specific phase modulations, the pulse filamentation region in air can be markedly shifted further and elongated compared with a nonmodulated pulse. Moreover, during the post-filamentation propagation of spatially structured radiation, the highly localized light channels are formed, possessing enhanced intensity and reduced angular divergence, which enables post-filamentation pulse self-channeling on the distance multiple exceeding the Rayleigh range.
Tags from this library: No tags from this library for this title. Log in to add tags.
No physical items for this record

Библиогр.: 29 назв.

The propagation of high-intensity femtosecond laser pulses in air under conditions of superposed spatial phase modulation is considered theoretically. The numerical simulations are carried out on the basis of the reduced form of a nonlinear Schrödinger equation for a time-averaged electric field envelope. Initial spatial modulations are applied to pulse wavefront profiling by a staggered (TEM22) phase plate, which is simulated numerically. The dynamics of laser pulse self-focusing, filamentation, and post-filamentation self-channeling after the phase plates with variable phase jumps is studied. We show that, with specific phase modulations, the pulse filamentation region in air can be markedly shifted further and elongated compared with a nonmodulated pulse. Moreover, during the post-filamentation propagation of spatially structured radiation, the highly localized light channels are formed, possessing enhanced intensity and reduced angular divergence, which enables post-filamentation pulse self-channeling on the distance multiple exceeding the Rayleigh range.

There are no comments on this title.

to post a comment.
Share